The present invention relates to a power tool, in particular a chisel hammer, comprising a drive, a striking mechanism device, a control device, an energy supply device for supplying the power tool with electrical energy and a power tool housing with a first and second power tool housing area.
Power tools designed as hammer drills and/or chisel hammers of the type mentioned at the beginning are known in principle from the prior art.
The handling or operation of large hand-held power tools can turn out to be difficult in certain situations, since these power tools are often heavy and have a balanced mass or weight distribution. Even a slight change in the position of the power tool can therefore lead to an almost uncontrollable destabilization and sudden distraction. As a result, it is also possible that the power tool is dropped by a user and falls onto the ground. Correspondingly, damage to the power tool, and in particular to the components of a power supply for the power tool, is possible. Damage to the power supply can occur especially because the components of the power supply are often located in exposed places on the power tool.
It is an object of the present invention to provide a power tool that allows improved handling and operation and ensures better protection for the power supply of the power tool.
The present invention provides a power tool, in particular a chisel hammer, comprising a drive, a striking mechanism device, a control device, an energy supply device for supplying the power tool with electrical energy and a power tool housing with a first and second power tool housing area.
According to the invention, it is provided that the energy supply device can be positioned in one direction between the first and second power tool housing areas, a first interface for connecting the energy supply device to the first power tool housing area and a second interface for connecting the energy supply device to the second power tool housing area being provided.
Both the first and second interfaces may be designed to establish a releasable mechanical connection with the respective first and second power tool housing area. The mechanical connection may be designed in the form of a form-fitting and/or force-fitting coupling. It is possible here that the mechanical connection is designed in the form of a tongue-and-groove system or in the form of a rail system. In addition, the first and second interfaces are designed to establish a releasable electrical connection with the respective first and second power tool housing area. By means of the electrical connection, electrical energy can be conducted from the energy supply device to the first and/or second power tool housing area. Furthermore, the first and second interfaces and the energy supply device may be designed such that electrical communication signals can be transported from the first or second power tool housing area via the energy supply device to the second or first power tool housing area.
According to an advantageous embodiment of the present invention, it may be possible that the first and second interfaces are designed to releasably connect the energy supply device to the first and second power tool housing areas.
According to an advantageous embodiment of the present invention, it may be possible that the energy supply device is designed as a battery connection device with at least one battery interface for the releasable connection of the energy supply device to at least one battery.
According to an advantageous embodiment of the present invention, it may be possible that the energy supply device is designed as a network connection device with a line for the releasable connection of the power tool to a network power source.
According to an advantageous embodiment of the present invention, it may be possible that the energy supply device comprises at least one ventilation duct, the at least one ventilation duct extending essentially from an upper side to an underside of the energy supply device.
According to an advantageous embodiment of the present invention, it may be possible that the at least one ventilation duct comprises at least one fan for generating an air flow through the at least one ventilation duct.
According to a further advantageous embodiment, it may be possible that the power tool is designed such that a center of gravity of the energy supply device and a center of gravity of the tool housing are essentially at a point of intersection of a first and second plane, the first and second planes being arranged perpendicular to one another. This results in an almost optimal balance and weight distribution and improves the handling of the power tool.
Further advantages will become apparent from the following description of the figures. Various exemplary embodiments of the present invention are illustrated in the figures. The figures, the description and the claims contain numerous features in combination. A person skilled in the art will expediently also consider the features individually and combine them to form useful further combinations.
In the figures, identical and similar components are denoted by the same reference signs. In the figures:
The power tool 1 essentially comprises a power tool housing 2, a first handle device 3a and a second handle device 3b, a tool receiving device 4, a drive 5, a striking mechanism 6, a control device and an energy supply device 7, cf.
The energy supply device 7 serves for supplying the electrical consumers with electrical energy.
The drive 5, see, e.g.,
The control device is shown solely schematically as C in
The power tool housing 2 comprises a first power tool housing area 20 and second power tool housing area 30. As indicated in
The first power tool housing area 20 in turn comprises a first end 20a and a second end 20b. The second power tool housing area 30 likewise comprises a first end 30a and a second end 30b.
The tool receiving device 4 is positioned at the first end 20a of the first power tool housing area 20. The tool receiving device 4 serves for receiving and holding a tool. The tool is not shown in the figures. In the case of the design of the power tool 1 in the form of a chisel hammer, the tool is designed as a chisel. In addition, the first handle device 3a is positioned at the first end 20a of the first power tool housing area 20. A first interface 22 is provided at the second end 20b of the first power tool housing area 20, cf.
A second interface 32, cf.
Both the first and second handle devices 3a, 3b serve for holding and guiding the power tool 1. It is provided that one hand of a user of the power tool 1 firmly holds the power tool 1 on the first handle device 3a and another hand on the second handle device 3b.
As can be seen from
As can be seen in
In
In addition, both the first and second interfaces 7a, 7b of the energy supply device 7 and the first interface 22 of the first power tool housing area 20 and the second interface 32 of the second power tool housing area 30 respectively comprise electrical contact elements, so that electrical energy can pass from the energy supply device 7 to the first and/or second power tool housing area 20, 30. The electrical contact elements are not shown in the figures.
Furthermore, both the first and second interfaces 7a, 7b of the energy supply device 7 and the first interface 22 of the first power tool housing area 20 and the second interface 32 of the second power tool housing area 30 respectively comprise communication elements to transport communication signals from the first or second power tool housing area 20, 30 via the energy supply device 7 to the second or first power tool housing area 20, 30. Communication signals may also be sent and/or received from the energy supply device 7 to the first and/or second power tool housing area 20, 30.
The battery interface 13 is positioned on the inner side 18 of the first side wall 15a of the energy supply device 7. The fan 17 is arranged below the battery interface 13 in direction C, cf.
In
Neither the network power source, the control unit nor the transformer are shown in the figures.
By means of the line 40, electrical energy can reach the energy supply device 7. As already described above, the electrical energy can then be transported via the first and second interfaces 7a, 7b from the energy supply device 7 to the first and/or second power tool housing area 20, 30.
As indicated in
As can be seen from
As shown in
Number | Date | Country | Kind |
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20161206 | Mar 2020 | EP | regional |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2021/054402 | 2/23/2021 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2021/175652 | 9/10/2021 | WO | A |
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Number | Date | Country | |
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20230079576 A1 | Mar 2023 | US |